Fundamental Frequency Layer-Wise Optimization of Tow-Steered Composites Considering Gaps and Overlaps

A. Pagani, A. Racionero Sánchez-Majano, D. Zamani, M. Petrolo, E. Carrera
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Abstract

The advent of Automated Fiber Placement (AFP) in aerospace composites lay-up and manufacturing has allowed orientations to vary along pre-defined curved directions rather than being forced to remain constant within the lamina. These composites are called Variable Angle Tow (VAT) or Variable Stiffness Composites (VSC). Despite the enhancements in mechanical performance offered by VAT, constraints from the manufacturing process hinder their full potential. This paper explores the effect of primary defects, i.e., gaps and overlaps, on optimal design and fundamental frequency optimization. For doing so, the Carrera Unified Formulation (CUF) and the Defect Layer Method (DLM) are integrated directly into the optimization process to provide an efficient and cost-effective framework for modeling the structural behavior and manufacturing process of VSCs. Particular attention is given to manufacturing and tow-steering simulation to quantify and map defects for each laminate layer. This research serves a dual purpose: (i) examining the impact of process-induced defects on achieving an optimal design and (ii) exploring how the choice of structural theory may affect the optimal solution.

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考虑间隙和重叠的拖束复合材料基频分层优化
自动纤维铺放(AFP)技术在航空复合材料铺放和制造中的出现,使得取向可以沿着预先定义的弯曲方向变化,而不是被迫在层内保持恒定。这些复合材料被称为变角复合材料(VAT)或变刚度复合材料(VSC)。尽管增值税提高了机械性能,但制造过程的限制阻碍了它们充分发挥潜力。本文探讨了主要缺陷,即间隙和重叠对优化设计和基频优化的影响。为此,将Carrera统一公式(CUF)和缺陷层方法(DLM)直接集成到优化过程中,为vsc的结构行为和制造过程建模提供了一个高效且经济的框架。特别关注制造和拖曳模拟,以量化和映射每个层压缺陷。本研究具有双重目的:(i)检查过程引起的缺陷对实现最优设计的影响;(ii)探索结构理论的选择如何影响最优解。
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